| Literature DB >> 34746888 |
Nao Sato1, Kenji Karino1, Makoto Hirose2, Satoru Okamoto3, Tomoko Osaka4, Hatsue Matsumura1, Yoshiaki Iwashita5.
Abstract
AIM: Chest compression depth (CCD) in cardiopulmonary resuscitation is important. However, lightweight rescuers have difficulty achieving an appropriate depth. Chest compression force (CCFORCE) can be increased by placing the arms at 100° to the patient's frontal plane. In a simulation manikin study, we compared the CCD at 90° and 100° among lightweight Asian females and hypothesized that the CCD would be greater when the arms were placed at 100°.Entities:
Keywords: CCA, chest compression angle; CCD, chest compression depth; CCFORCE, chest compression force; CPR, cardiopulmonary resuscitation; Cardiopulmonary resuscitation; Chest compression angle; Depth; Lightweight
Year: 2021 PMID: 34746888 PMCID: PMC8551462 DOI: 10.1016/j.resplu.2021.100169
Source DB: PubMed Journal: Resusc Plus ISSN: 2666-5204
Fig. 1The figure shows the protractor image projected onto a wall and chest compressions are performed at the projected angle. a: The distance between the participant’s shoulders and the point of intersection between the extension line of the participant’s hips and the frontal plane of the manikin’s chest. b: The distance between the participant’s shoulders and the location of the participant’s palms placed on the manikin’s chest. c: The distance between the participant’s palms placed on the manikin’s chest and distance “a”.
Fig. 2This figure shows chest compressions with a CPRmeter-2. According to the leverage principle, when a certain amount of force is applied to the point of effort, longer distances between the point of effort and the fulcrum lead to an increase in the force applied to the point of action. : The input force to the effort point. a < á. . .
Fig. 3Flow diagram of the study subjects. Among the 35 participants, 3 were excluded because their angles deviated from the prescribed angle. Thirty participants were categorized according to the chest compression depth (CCD) at 90°: ≤40 mm (group 1), 41–49 mm (group 2), and ≥ 50 mm (group 3).
Comparison of body types and classification of groups according to compression depth.
| All | Group 1 | Group 2 | Group 3 | |
|---|---|---|---|---|
| N | 32 | 10 | 12 | 10 |
| Height (cm) | 157 ± 5 | 156 ± 4 | 156 ± 4 | 158 ± 5 |
| Weight (kg) | 50.0 ± 4.0 | 48.6 ± 3.2 | 49.4 ± 3.9 | 51.1 ± 4.0 |
| BMI (kg/m2) | 20.3 ± 1.4 | 19.9 ± 1.9 | 20.2 ± 1.3 | 20.6 ± 1.5 |
The mean height, body weight, and body mass index (BMI) were not significantly different between the groups.
Fig. 4Changes in chest compression depth according to chest compression. CCA: chest compression angle.
Fig. 5Correlation between compression force and depth (n = 64).